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Advanced deep learning methodology for accurate, real-time segmentation of high-resolution intravascular ultrasound images
End-diastolic segmentation of intravascular ultrasound images enables more reproducible volumetric analysis of atheroma burden
Wall shear stress estimated by 3D-QCA can predict cardiovascular events in lesions with borderline negative fractional flow reserve
A deep learning methodology for the automated detection of end-diastolic frames in intravascular ultrasound images
Predictive value of the QFR in detecting vulnerable plaques in non-flow limiting lesions
The evolution of data fusion methodologies developed to reconstruct coronary artery geometry from intravascular imaging and coronary angiography data: a comprehensive review